Photonics Research, 2020, 8 (11): 11001725, Published Online: Oct. 28, 2020  

Revealing the intrinsic nonlinear optical response of a single MoS2 nanosheet in a suspension based on spatial self-phase modulation Download: 662次

Author Affiliations
1 Hunan Key Laboratory for Super-microstructure and Ultrafast Process, School of Physics and Electronics, Central South University, Changsha 410083, China
2 e-mail: junhe@csu.edu.cn
3 e-mail: wyw1988@csu.edu.cn
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Si Xiao, Ying Ma, Yilin He, Yiduo Wang, Hao Xin, Qi Fan, Jingdi Zhang, Xiaohong Li, Yu Zhang, Jun He, Yingwei Wang. Revealing the intrinsic nonlinear optical response of a single MoS2 nanosheet in a suspension based on spatial self-phase modulation[J]. Photonics Research, 2020, 8(11): 11001725.

References

[1] S. D. Durbin, S. M. Arakelian, Y. R. Shen. Laser-induced diffraction rings from a nematicliquid-crystal film. Opt. Lett., 1981, 6: 411-413.

[2] X. Yang, S. Qi, C. Zhang, K. Chen, X. Liang, G. Yang, T. Xu, Y. Han, J. Tian. The study of self-diffraction of mercury dithizonate in polymer film. Opt. Commun., 2005, 256: 414-421.

[3] X. Zhang, Z. Yuan, R. Yang, Y. He, Y. Qin, S. Xiao, J. He. A review on spatial self-phase modulation of two-dimensional materials. J. Cent. South. Univ., 2019, 26: 2295-2306.

[4] K. S. Novoselov, A. K. Geim, S. V. Morozov, D. Jiang, Y. Zhang, S. V. Dubonos, I. V. Grigorieva, A. A. Firsov. Electric field effect in atomically thin carbon films. Science, 2004, 306: 666-669.

[5] M. Chhowalla, H. S. Shin, G. Eda, L.-J. Li, K. P. Loh, H. Zhang. The chemistry of two-dimensional layered transition metal dichalcogenide nanosheets. Nat. Chem., 2013, 5: 263-275.

[6] L. Fang, X. Yuan, K. Liu, L. Li, P. Zhou, W. Ma, H. Huang, J. He, S. Tao. Direct bilayer growth: a new growth principle for a novel WSe2 homo-junction and bilayer WSe2 growth. Nanoscale, 2020, 12: 3715-3722.

[7] L. Li, Y. Yu, G. J. Ye, Q. Ge, X. Ou, H. Wu, D. Feng, X. H. Chen, Y. Zhang. Black phosphorus field-effect transistors. Nat. Nanotechnol., 2014, 9: 372-377.

[8] N. Meinzer, W. L. Barnes, I. R. Hooper. Plasmonic meta-atoms and metasurfaces. Nat. Photonics, 2014, 8: 889-898.

[9] Y. Zhang, L. Shi, D. Hu, S. Chen, S. Xie, Y. Lu, Y. Cao, Z. Zhu, L. Jin, B.-O. Guan, S. Rogge, X. Li. Full-visible multifunctional aluminium metasurfaces by in situ anisotropic thermoplasmonic laser printing. Nanoscale Horiz., 2019, 4: 601-609.

[10] X. Li, H. Ren, X. Chen, J. Liu, Q. Li, C. Li, G. Xue, J. Jia, L. Cao, A. Sahu. Athermally photoreduced graphene oxides for three-dimensional holographic images. Nat. Commun., 2015, 6: 6984.

[11] Q. Bao, H. Zhang, Y. Wang, Z. Ni, Y. Yan, Z. X. Shen, K. P. Loh, D. Y. Tang. Atomic-layer graphene as a saturable absorber for ultrafast pulsed lasers. Adv. Funct. Mater., 2009, 19: 3077-3083.

[12] Y. Wang, H. Mu, X. Li, J. Yuan, J. Chen, S. Xiao, Q. Bao, Y. Gao, J. He. Observation of large nonlinear responses in a graphene-Bi2Te3 heterostructure at a telecommunication wavelength. Appl. Phys. Lett., 2016, 108: 221901.

[13] A. Y. Bykov, P. S. Rusakov, E. D. Obraztsova, T. V. Murzina. Probing structural inhomogeneity of graphene layers via nonlinear optical scattering. Opt. Lett., 2013, 38: 4589-4592.

[14] G. Wang, A. A. Baker-Murray, W. J. Blau. Saturable absorption in 2D nanomaterials and related photonic devices. Laser Photonics Rev., 2019, 13: 1800282.

[15] K. Wang, J. Wang, J. Fan, M. Lotya, A. O’Neill, D. Fox, Y. Feng, X. Zhang, B. Jiang, Q. Zhao, H. Zhang, J. N. Coleman, L. Zhang, W. J. Blau. Ultrafast saturable absorption of two-dimensional MoS2 nanosheets. ACS Nano, 2013, 7: 9260-9267.

[16] G. T. Forcherio, J. Riporto, J. R. Dunklin, Y. Mugnier, R. Le Dantec, L. Bonacina, D. K. Roper. Nonlinear optical susceptibility of two-dimensional WS2 measured by hyper Rayleigh scattering. Opt. Lett., 2017, 42: 5018-5021.

[17] N. Dong, Y. Li, S. Zhang, N. McEvoy, X. Zhang, Y. Cui, L. Zhang, G. S. Duesberg, J. Wang. Dispersion of nonlinear refractive index in layered WS2 and WSe2 semiconductor films induced by two-photon absorption. Opt. Lett., 2016, 41: 3936-3939.

[18] Y. Wang, S. Liu, J. Yuan, P. Wang, J. Chen, J. Li, S. Xiao, Q. Bao, Y. Gao, J. He. Ultra-broadband nonlinear saturable absorption for two-dimensional Bi2TexSe3−x nanosheets. Sci. Rep., 2016, 6: 33070.

[19] Y. Wang, G. Huang, H. Mu, S. Lin, J. Chen, S. Xiao, Q. Bao, J. He. Ultrafast recovery time and broadband saturable absorption properties of black phosphorus suspension. Appl. Phys. Lett., 2015, 107: 091905.

[20] Y. W. Wang, S. Liu, B. W. Zeng, H. Huang, J. Xiao, J. B. Li, M. Q. Long, S. Xiao, X. F. Yu, Y. L. Gao, J. He. Ultraviolet saturable absorption and ultrafast carrier dynamics in ultrasmall black phosphorus quantum dots. Nanoscale, 2017, 9: 4683-4690.

[21] K. Chen, Y. Wang, J. Liu, J. Kang, Y. Ge, W. Huang, Z. Lin, Z. Guo, Y. Zhang, H. Zhang. In situ preparation of a CsPbBr3/black phosphorus heterostructure with an optimized interface and photodetector application. Nanoscale, 2019, 11: 16852-16859.

[22] Y. Wang, K. Chen, H. Hao, G. Yu, B. Zeng, H. Wang, F. Zhang, L. Wu, J. Li, S. Xiao, J. He, Y. Zhang, H. Zhang. Engineering ultrafast charge transfer in a bismuthene/perovskite nanohybrid. Nanoscale, 2019, 11: 2637-2643.

[23] R. Wu, Y. Zhang, S. Yan, F. Bian, W. Wang, X. Bai, X. Lu, J. Zhao, E. Wang. Purely coherent nonlinear optical response in solution dispersions of graphene sheets. Nano Lett., 2011, 11: 5159-5164.

[24] G. Wang, S. Zhang, X. Zhang, L. Zhang, Y. Cheng, D. Fox, H. Zhang, J. N. Coleman, W. J. Blau, J. Wang. Tunable nonlinear refractive index of two-dimensional MoS2, WS2, and MoSe2 nanosheet dispersions [invited]. Photon. Res., 2015, 3: A51-A55.

[25] Y. Jiang, Y. Ma, Z. Fan, P. Wang, X. Li, Y. Wang, Y. Zhang, J. Shen, G. Wang, Z.-J. Yang, S. Xiao, Y. Gao, J. He. Abnormal nonlinear optical properties of hybrid graphene-TiO2 nanostructures. Opt. Lett., 2018, 43: 523-526.

[26] B. Shi, L. Miao, Q. Wang, J. Du, P. Tang, J. Liu, C. Zhao, S. Wen. Broadband ultrafast spatial self-phase modulation for topological insulator Bi2Te3 dispersions. Appl. Phys. Lett., 2015, 107: 151101.

[27] C. Xing, Z. Xie, Z. Liang, W. Liang, T. Fan, J. S. Ponraj, S. C. Dhanabalan, D. Fan, H. Zhang. 2D nonlayered selenium nanosheets: facile synthesis, photoluminescence, and ultrafast photonics. Adv. Opt. Mater., 2017, 5: 1700884.

[28] W. Huang, C. Xing, Y. Wang, Z. Li, L. Wu, D. Ma, X. Dai, Y. Xiang, J. Li, D. Fan, H. Zhang. Facile fabrication and characterization of two-dimensional bismuth(iii) sulfide nanosheets for high-performance photodetector applications under ambient conditions. Nanoscale, 2018, 10: 2404-2412.

[29] Z. Xie, F. Zhang, Z. Liang, T. Fan, Z. Li, X. Jiang, H. Chen, J. Li, H. Zhang. Revealing of the ultrafast third-order nonlinear optical response and enabled photonic application in two-dimensional tin sulfide. Photon. Res., 2019, 7: 494-502.

[30] L. Wu, Z. Xie, L. Lu, J. Zhao, Y. Wang, X. Jiang, Y. Ge, F. Zhang, S. Lu, Z. Guo, J. Liu, Y. Xiang, S. Xu, J. Li, D. Fan, H. Zhang. Few-layer tin sulfide: a promising black-phosphorus-analogue 2D material with exceptionally large nonlinear optical response, high stability, and applications in all-optical switching and wavelength conversion. Adv. Opt. Mater., 2018, 6: 1700985.

[31] S. Xiao, B. Lv, L. Wu, M. Zhu, J. He, S. Tao. Dynamic self-diffraction in MoS2 nanoflake solutions. Opt. Express, 2015, 23: 5875-5887.

[32] S. Xiao, Y. Zhang, Y. Ma, Y. Wang, Y. He, J. Zhang, Y. Jiang, X. Li, R. Yang, J. He, Y. Wang. Observation of spatial self-phase modulation induced via two competing mechanisms. Opt. Lett., 2020, 45: 2850-2853.

[33] X. Li, R. Liu, H. Xie, Y. Zhang, B. Lyu, P. Wang, J. Wang, Q. Fan, Y. Ma, S. Tao, S. Xiao, X. Yu, Y. Gao, J. He. Tri-phase all-optical switching and broadband nonlinear optical response in Bi2Se3 nanosheets. Opt. Express, 2017, 25: 18346-18354.

[34] Y. Wu, Q. Wu, F. Sun, C. Cheng, S. Meng, J. Zhao. Emergence of electron coherence and two-color all-optical switching in MoS2 based on spatial self-phase modulation. Proc. Natl. Acad. Sci. USA, 2015, 112: 11800-11805.

[35] X. Li, K. Hu, B. Lyu, J. Zhang, Y. Wang, P. Wang, S. Xiao, Y. Gao, J. He. Enhanced nonlinear optical response of rectangular MoS2 and MoS2/TiO2 in dispersion and film. J. Phys. Chem. C, 2016, 120: 18243-18248.

[36] J. Li, Z. Zhang, J. Yi, L. Miao, J. Huang, J. Zhang, Y. He, B. Huang, C. Zhao, Y. Zou, S. Wen. Broadband spatial self-phase modulation and ultrafast response of MXene Ti3C2Tx (T = O, OH or F). Nanophotonics, 2020, 9: 2415-2424.

[37] Y. Jia, Z. Li, M. Saeed, J. Tang, H. Cai, Y. Xiang. Kerr nonlinearity in germanium selenide nanoflakes measured by Z-scan and spatial self-phase modulation techniques and its applications in all-optical information conversion. Opt. Express, 2019, 27: 20857-20873.

[38] Y. Shan, J. Tang, L. Wu, S. Lu, X. Dai, Y. Xiang. Spatial self-phase modulation and all-optical switching of graphene oxide dispersions. J. Alloys Compd., 2019, 771: 900-904.

[39] J. N. Coleman, M. Lotya, A. O’Neill, S. D. Bergin, P. J. King, U. Khan, K. Young, A. Gaucher, S. De, R. J. Smith. Two-dimensional nanosheets produced by liquid exfoliation of layered materials. Science, 2011, 331: 568-571.

[40] B. Radisavljevic, A. Radenovic, J. Brivio, V. Giacometti, A. Kis. Single-layer MoS2 transistors. Nat. Nanotechnol., 2011, 6: 147-150.

[41] S. S. Chou, M. De, J. Kim, S. Byun, C. Dykstra, J. Yu, J. Huang, V. P. Dravid. Ligand conjugation of chemically exfoliated MoS2. J. Am. Chem. Soc., 2013, 135: 4584-4587.

[42] T. Liu, S. Shi, C. Liang, S. Shen, L. Cheng, C. Wang, X. Song, S. Goel, T. E. Barnhart, W. Cai, Z. Liu. Iron oxide decorated MoS2 nanosheets with double pegylation for chelator-free radiolabeling and multimodal imaging guided photothermal therapy. ACS Nano, 2015, 9: 950-960.

[43] C. Lee, H. Yan, L. E. Brus, T. F. Heinz, J. Hone, S. Ryu. Anomalous lattice vibrations of single-and few-layer MoS2. ACS Nano, 2010, 4: 2695-2700.

[44] P. Qi, Q. Su, D. Lu, L. Lin, N. Zhang, W. Liu. Optical nonlinearities of alcoholic liquids under high-repetition-rate femtosecond lasers by single beam time-resolved eclipsed Z-scan. Opt. Laser Technol., 2019, 109: 643-647.

[45] M. Falconieri, G. Salvetti. Simultaneous measurement of pure-optical and thermo-optical nonlinearities induced by high-repetition-rate, femtosecond laser pulses: application to CS2. Appl. Phys. B, 1999, 69: 133-136.

[46] T.-J. Sun, X. Qian, Y.-X. Shang, J. Liu, K.-Y. Wang, Y. Ji. Coherent rainbows from solids. Sci. Bull., 2018, 63: 531-534.

[47] D. Swinehart. The Beer-Lambert law. J. Chem. Educ., 1962, 39: 333.

[48] L. Liu, K. Xu, X. Wan, J. Xu, C. Y. Wong, H. K. Tsang. Enhanced optical Kerr nonlinearity of MoS2 on silicon waveguides. Photon. Res., 2015, 3: 206-209.

Si Xiao, Ying Ma, Yilin He, Yiduo Wang, Hao Xin, Qi Fan, Jingdi Zhang, Xiaohong Li, Yu Zhang, Jun He, Yingwei Wang. Revealing the intrinsic nonlinear optical response of a single MoS2 nanosheet in a suspension based on spatial self-phase modulation[J]. Photonics Research, 2020, 8(11): 11001725.

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